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Development of a light-commercial compressor load stand to measure compressor performance using low-GWP refrigerants

机译:开发轻型商业压缩机负载架,用于使用低GWP制冷剂测量压缩机性能

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Popular hydrofluorocarbon refrigerants such as R134a and R410A are in the process of being phased out due to the high Global Warming Potential (GWP) of these fluids. A large variety of low-GWP refrigerants are being considered as replacements including R1234yf, R1234ze(E), R1234ze(D), R32, and blends of these with traditional refrigerants. As a result of high efficiency standards for HVAC&R equipment, the choice of refrigerant has a large impact on the design of a compressor to maximize its efficiency. Therefore, changing the most common refrigerants will require significant design changes to compressors and test environments that support re-design activities such as a hot-gas bypass compressor load stand. The hot-gas bypass style is a common system design to test compressors and is used for its many benefits, including rapid transition between testing conditions and low operational cost. A thermodynamic model of a hot-gas bypass cycle has been developed in Engineering Equation Solver (EES). Outputs from this model were used to select the components and tubing sizes in combination with ASHRAE guidelines. The design capacity for the load stand is a range of 10-80 tons (35-281 kW) compressor capacity. The large range in capacities desired created many design challenges to overcome including maintaining proper oil circulation and refrigerant velocity. The compressor load stand is capable of testing the performance of different compressors over a range of operating conditions. It also includes independent control over oil circulation/injection rate as well as a dedicated economizer circuit. These capabilities can then be used to optimize a wide spectrum of compressor types on low-GWP refrigerants. Ultimately, the load stand serves as a new addition to the thermal systems research infrastructure at Oklahoma State University. This allows for the continuation of research into new compressor technologies, as well as, for improvements in compressor efficiency in existing technologies. (C) 2019 Elsevier Ltd and IIR. All rights reserved.
机译:由于这些流体的高全球变暖电位(GWP),诸如R134A和R410A的流行的氢氟碳制冷剂如R134A和R410A在逐步逐步淘汰。各种各样的低GWP制冷剂被认为是替代品,包括R1234YF,R1234ze(E),R1234ze(D),R32和这些与传统制冷剂的共混物。由于HVAC&R设备的高效率标准,制冷剂的选择对压缩机的设计具有很大的影响,以最大限度地提高其效率。因此,改变最常见的制冷剂将需要对压缩机和测试环境进行显着的设计变化,并支持重新设计活动,例如热气旁路压缩机负载架。热气旁路风格是一种用于测试压缩机的常见系统设计,用于其许多好处,包括测试条件和低运行成本之间的快速转换。在工程方程求解器(EES)中开发了热气旁路周期的热力学模型。该模型的输出用于选择与ASHRAE指南的组件和管道尺寸。负载架的设计能力为10-80吨(35-281千瓦)压缩机容量。容量的大范围需要创造了许多设计挑战,以克服,包括保持适当的油循环和制冷剂速度。压缩机负载支架能够在一系列操作条件下测试不同压缩机的性能。它还包括独立控制油循环/注入速率以及专用的节能器电路。然后可以使用这些能力来优化低GWP制冷剂上的广谱压缩机类型。最终,负载支架作为俄克拉荷马州立大学的热系统研究基础设施的新增功能。这允许继续研究新的压缩机技术,以及用于改进现有技术的压缩机效率。 (c)2019年Elsevier Ltd和IIR。版权所有。

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